Chemical gardens in laboratory chemistries ranging from silicates to polyoxometalates, in applications ranging from corrosion products to the hydration of Portland cement, and in natural settings ranging from hydrothermal vents in the ocean depths to brinicles beneath sea ice. In many chemical-garden experiments, the structure forms as a solid seed of a soluble ionic compound dissolves in a solution containing another reactive ion. In general any alkali silicate solution can be used due to their high solubility at high pH. The cation should not precipitate with the counterion of the metal salt used as seed. A main property of seed chemical-garden experiments is that initially, when the fluid is not moving under buoyancy or osmosis, the deli...
We studied the growth of metal-ion silicate chemical gardens under Earth gravity (1 g) and micrograv...
Chemical gardens are tubular structures that consist of inorganic precipitate membranes formed under...
Self-organizing precipitation processes, such as chemical gardens forming biomimetic micro- and nano...
Chemical gardens in laboratory chemistries ranging from silicates to polyoxometalates, in applicatio...
Chemical gardens in laboratory chemistries ranging from silicates to polyoxometalates, in applicatio...
Chemical gardens are perhaps the best example in chemistry of a self-organizing nonequilibrium proce...
Chemical gardens are inorganic, self-organizing precipitates that form when metal salts are added to...
Chemical gardens are inorganic, self-organizing precipitates that form when metal salts are added to...
Herein, we show it is possible to produce wholly inorganic chemical gardens from a cationic polyoxom...
Herein, we show it is possible to produce wholly inorganic chemical gardens from a cationic polyoxom...
“Chemical” or “silicate gardens” are a well known example for the spontaneous formation of a complex...
“Chemical” or “silicate gardens” are a well known example for the spontaneous formation of a complex...
We show that a chemical garden can be developed from an alkaline metal precipitate using a flow-driv...
We have grown chemical gardens in different sodium silicate solutions from several metal-ion salts-c...
Chemical gardens are tubular structures that consist of inorganic precipitate membranes formed under...
We studied the growth of metal-ion silicate chemical gardens under Earth gravity (1 g) and micrograv...
Chemical gardens are tubular structures that consist of inorganic precipitate membranes formed under...
Self-organizing precipitation processes, such as chemical gardens forming biomimetic micro- and nano...
Chemical gardens in laboratory chemistries ranging from silicates to polyoxometalates, in applicatio...
Chemical gardens in laboratory chemistries ranging from silicates to polyoxometalates, in applicatio...
Chemical gardens are perhaps the best example in chemistry of a self-organizing nonequilibrium proce...
Chemical gardens are inorganic, self-organizing precipitates that form when metal salts are added to...
Chemical gardens are inorganic, self-organizing precipitates that form when metal salts are added to...
Herein, we show it is possible to produce wholly inorganic chemical gardens from a cationic polyoxom...
Herein, we show it is possible to produce wholly inorganic chemical gardens from a cationic polyoxom...
“Chemical” or “silicate gardens” are a well known example for the spontaneous formation of a complex...
“Chemical” or “silicate gardens” are a well known example for the spontaneous formation of a complex...
We show that a chemical garden can be developed from an alkaline metal precipitate using a flow-driv...
We have grown chemical gardens in different sodium silicate solutions from several metal-ion salts-c...
Chemical gardens are tubular structures that consist of inorganic precipitate membranes formed under...
We studied the growth of metal-ion silicate chemical gardens under Earth gravity (1 g) and micrograv...
Chemical gardens are tubular structures that consist of inorganic precipitate membranes formed under...
Self-organizing precipitation processes, such as chemical gardens forming biomimetic micro- and nano...